The impact of chemical modelling on turbulent premixed flame acoustics

被引:14
作者
Brouzet, D. [1 ]
Talei, M. [1 ]
Brear, M. J. [1 ]
Cuenot, B. [2 ]
机构
[1] Univ Melbourne, Dept Mech Engn, Parkville, Vic 3010, Australia
[2] CERFACS, 42 Ave Gaspard Coriolis, F-31057 Toulouse 1, France
基金
澳大利亚研究理事会;
关键词
turbulent reacting flows; aeroacoustics;
D O I
10.1017/jfm.2020.1184
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Direct numerical simulations are used to study the impact of chemical modelling on the flame dynamics and the sound generated by three-dimensional, turbulent, premixed methane/air jet flames. The semi-global BFER mechanism from Franzelli et al. (Combust. Flame, vol. 159, issue 2, 2012, pp. 621-637) and the more complex skeletal COFFEE mechanism from Coffee (Combust. Flame, vol. 55, issue 2, 1984, pp. 161-170) are considered. A more wrinkled flame is observed at downstream locations when using the COFFEE mechanism, demonstrating stronger flame/turbulence interaction. This flame also has a significantly lower acoustic power even though it features more acoustic output at high frequencies. The former is shown to arise from lower fluctuations of the heat release rate, whilst the latter is caused by the COFFEE mechanism creating more wrinkled flame surfaces. These results suggest that the accurate simulation of the noise emitted by turbulent premixed flames requires a chemical mechanism that ensures two main features: the heat release rate profile is important for modelling the overall sound amplitude and low frequency acoustics, whilst the flame/turbulence interaction impacts the higher frequency sound.
引用
收藏
页数:33
相关论文
共 100 条
[91]   Turbulence-flame interactions in DNS of a laboratory high Karlovitz premixed turbulent jet flame [J].
Wang, Haiou ;
Hawkes, Evatt R. ;
Chen, Jacqueline H. .
PHYSICS OF FLUIDS, 2016, 28 (09)
[92]   USE OF FAST FOURIER TRANSFORM FOR ESTIMATION OF POWER SPECTRA - A METHOD BASED ON TIME AVERAGING OVER SHORT MODIFIED PERIODOGRAMS [J].
WELCH, PD .
IEEE TRANSACTIONS ON AUDIO AND ELECTROACOUSTICS, 1967, AU15 (02) :70-+
[93]  
Wilfert G., 2007, 18 INT S AIR BREATH
[94]   ON CONVECTION VELOCITIES IN TURBULENT SHEAR FLOWS [J].
WILLS, JAB .
JOURNAL OF FLUID MECHANICS, 1964, 20 (03) :417-432
[95]   A direct numerical simulation study on the mean velocity characteristics in turbulent pipe flow [J].
Wu, Xiaohua ;
Moin, Parviz .
JOURNAL OF FLUID MECHANICS, 2008, 608 :81-112
[96]   On Prediction of Combustion Generated Noise with the Turbulent Heat Release Rate [J].
Zhang, F. ;
Habisreuther, P. ;
Bockhorn, H. ;
Nawroth, H. ;
Paschereit, C. O. .
ACTA ACUSTICA UNITED WITH ACUSTICA, 2013, 99 (06) :940-951
[97]   PREMIXED FLAME EFFECTS ON TURBULENCE AND PRESSURE-RELATED TERMS [J].
ZHANG, SW ;
RUTLAND, CJ .
COMBUSTION AND FLAME, 1995, 102 (04) :447-461
[98]   Transient energy growth of acoustic disturbances in triggering self-sustained thermoacoustic oscillations [J].
Zhang, Zhiguo ;
Zhao, Dan ;
Li, S. H. ;
Ji, C. Z. ;
Li, X. Y. ;
Li, J. W. .
ENERGY, 2015, 82 :370-381
[99]   Experimental counterflow ignition temperatures and reaction mechanisms of 1,3-butadiene [J].
Zheng, X. L. ;
Lu, T. F. ;
Law, C. K. .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2007, 31 :367-375
[100]   Mechanisms for generating coherent packets of hairpin vortices in channel flow [J].
Zhou, J ;
Adrian, RJ ;
Balachandar, S ;
Kendall, TM .
JOURNAL OF FLUID MECHANICS, 1999, 387 :353-396